Equilibrium thermal transitions of collagen model peptides

被引:134
作者
Persikov, AV [1 ]
Xu, YJ [1 ]
Brodsky, B [1 ]
机构
[1] Univ Med & Dent New Jersey, Robert Wood Johnson Med Sch, Piscataway, NJ 08854 USA
关键词
collagen; triple helix; peptide; equilibrium; thermodynamics; two-state model; relaxation;
D O I
10.1110/ps.03501704
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The folding of collagen in vitro is very slow and presents difficulties in reaching equilibrium, a feature that may have implications for in vivo collagen function. Peptides serve as good model systems for examining equilibrium thermal transitions in the collagen triple helix. Investigations were carried out to ascertain whether a ran-e of synthetic triple-helical peptides of varying sequences can reach equilibrium, and whether the triple helix to unfolded monomer transition approximates a two-state model. The thermal transitions for all peptides studied are fully reversible given sufficient time. Isothermal experiments were carried out to obtain relaxation times at different temperatures. The slowest relaxation times, on the order of 10-15 h, were observed at the beginning of transitions, and were shown to result from self-association limited by the low concentration of free monomers, rather than cis-trans isomerization. Although the fit of the CD equilibrium transition curves and the concentration dependence of T values support a two-state model, the more rigorous comparison of the calorimetric enthalpy to the van't Hoff enthalpy indicates the two-state approximation is not ideal. Previous reports of melting curves of triple-helical host-guest peptides are shown to be a two-state kinetic transition, rather than an equilibrium transition.
引用
收藏
页码:893 / 902
页数:10
相关论文
共 44 条
[1]   PRINCIPLES THAT GOVERN FOLDING OF PROTEIN CHAINS [J].
ANFINSEN, CB .
SCIENCE, 1973, 181 (4096) :223-230
[2]   FOLDING MECHANISM OF THE TRIPLE HELIX IN TYPE-III COLAGEN AND TYPE-III PN-COLLAGEN - ROLE OF DISULFIDE BRIDGES AND PEPTIDE-BOND ISOMERIZATION [J].
BACHINGER, HP ;
BRUCKNER, P ;
TIMPL, R ;
PROCKOP, DJ ;
ENGEL, J .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1980, 106 (02) :619-632
[3]   Thermodynamic vs. kinetic stability of collagen triple helices [J].
Bächinger, HP ;
Engel, J .
MATRIX BIOLOGY, 2001, 20 (04) :267-269
[4]   ROLE OF CIS-TRANS ISOMERIZATION OF PEPTIDE-BONDS IN COIL REVERSIBLE TRIPLE HELIX CONVERSION OF COLLAGEN [J].
BACHINGER, HP ;
BRUCKNER, P ;
TIMPL, R ;
ENGEL, J .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1978, 90 (03) :605-613
[5]  
Baum Jean, 1999, Current Opinion in Structural Biology, V9, P122, DOI 10.1016/S0959-440X(99)80016-5
[6]   Supercoiled protein motifs:: The collagen triple-helix and the α-helical coiled coil [J].
Beck, K ;
Brodsky, B .
JOURNAL OF STRUCTURAL BIOLOGY, 1998, 122 (1-2) :17-29
[7]   Site-specific NMR monitoring of cis-trans isomerization in the folding of the proline-rich collagen triple helix [J].
Buevich, AV ;
Dai, QH ;
Liu, XY ;
Brodsky, B ;
Baum, J .
BIOCHEMISTRY, 2000, 39 (15) :4299-4308
[8]   Characterization of collagen model peptides containing 4-fluoroproline;: (4(S)-fluoroproline-pro-gly)10 forms a triple helix, but (4(R)-fluoroproline-pro-gly)10 does not [J].
Doi, M ;
Nishi, Y ;
Uchiyama, S ;
Nishiuchi, Y ;
Nakazawa, T ;
Ohkubo, T ;
Kobayashi, Y .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (33) :9922-9923
[9]   Unfolding of a leucine zipper is not a simple two-state transition [J].
Dragan, AI ;
Privalov, PL .
JOURNAL OF MOLECULAR BIOLOGY, 2002, 321 (05) :891-908
[10]  
Dürr E, 2000, PROTEIN SCI, V9, P1410